Method of manufacturing diamond knife for ultra-microtome for continuous cutting
11260488 · 2022-03-01
Assignee
Inventors
- Hwan Hur (Daejeon, KR)
- Geon-Hee Kim (Sejong-si, KR)
- Ji Yong Bae (Sejong-si, KR)
- Hee-Seok Kweon (Daejeon, KR)
Cpc classification
International classification
B23K26/364
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a method of manufacturing a diamond knife for an ultra-microtome, including determining a shape and size of a knife, performing a multiphase flow analysis on movement of a droplet at a fore-end of the knife with the determined shape and size, processing a fine pattern to ensure hydrophobic property according to a result of the flow analysis, and grinding a blade of the knife after the processing of the fine pattern to minimize an interval between the pattern and the blade and, thus, a knife blade is always maintained in a wet state due to a droplet movement between a hydrophobic fine pattern and a hydrophilic surface to continuously generate ultrathin slices.
Claims
1. A method of manufacturing a diamond knife for an ultra-microtome with a hydrophobic surface, the method comprising: determining a shape and size of a knife with a hydrophilic surface; performing a multiphase flow analysis on a movement of a droplet to determine a ratio between the hydrophilic surface of the knife and a hydrophobic surface to be provided on the knife that would cause a given droplet on the knife to be guided to be moved to a fore-end portion of a knife blade of the knife; processing, according to a result of the multiphase flow analysis, a fine pattern on the knife to provide the hydrophobic surface on the knife; and subsequent to the processing of the fine pattern, grinding the knife blade such that the fore-end portion of the knife blade is hydrophilic and a portion of the knife that is adjacent to the fore-end portion is hydrophobic, thereby guiding the given droplet to be moved to the fore-end portion of the knife blade.
2. The method of claim 1, wherein the multiphase flow analysis comprises a two-dimensional (2D) finite-element analysis on a droplet movement.
3. The method of claim 1, wherein the processing of the fine pattern uses a mechanical processing method.
4. The method of claim 3, wherein the mechanical processing method is laser processing.
5. The method of claim 4, wherein the laser processing uses a laser with a wavelength of 150 nm to 250 nm.
6. The method of claim 4, further comprising forming an inclined diagonal groove on a surface of the knife during the laser processing.
7. The method of claim 4, further comprising forming a lattice groove on a surface of the knife during the laser processing.
8. A diamond knife manufactured using the method of claim 6, wherein the inclined diagonal groove is formed on the surface of the knife.
9. A diamond knife manufactured using the method of claim 7, wherein the lattice groove is formed on the surface of the knife.
10. A diamond knife manufactured using the method of claim 1, wherein the fine pattern is formed on a surface of the knife.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(9) Hereinafter, a method of manufacturing a diamond knife for an ultra-microtome according to embodiments will be described in detail with reference to the accompanying drawings. The following drawings are introduced to provide complete understanding of the scope and spirit of the present invention. Accordingly, the present invention may be carried out in other ways than the following drawings. Throughout this specification, the same reference numerals in the drawings denote the same element.
(10) All the terms used herein, which include technical or scientific terms, may have the same meaning that is generally understood by a person skilled in the art. In the description according to embodiments of the present invention and the accompanying drawings, certain detailed explanations of well-known functions and configurations are omitted when they are deemed that they may unnecessarily obscure the essence of the invention.
(11) Typically, an ultra-microtome for preparing as thin sample as possible uses a knife with a cutting blade formed of diamond or glass. Here, a thin slice is prepared via continuous cutting by the knife and, thus, a cutting edge surface of the knife becomes dry which causes a curling phenomenon. Accordingly, an operator needs to additionally perform an operation for re-spreading ultrathin slices that are continuously prepared, and thus, which leads lower working speed. In addition, in the case of a wet cutting method that is performed while a fluid is filled in a knife boat, it is frequently difficult to continuously perform an operation due to water leak.
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(13) When the above method is used, moisture accumulating on a sample block is advantageously removed but, when a water remover and a cutting surface of the sample block continuously contact each other during continuous cutting and scanning of ultrathin slices, the water remover and the cutting surface are inevitably damaged. Such a friction method has a limit in that it is difficult to recognize a three-dimensional (3D) nano-structure such as a biological sample prepared based on each ultrathin slice.
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(15) Referring to
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(17) As shown in
(18) Although described below with reference to
(19) In the processing of the fine pattern (S300), the fine pattern 200 may be processed on the knife surface 120 that is adjacent to a fore-end of the knife 100 according to the result of flow analysis, as shown in
(20) In the grinding of the blade of the knife (S400), a knife blade 110 at a fore-end of the knife 100 may be ground as shown in
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(22) An analysis target in
(23) TABLE-US-00001 Material properties Water Air Dynamic viscosity (Pa .Math. s) 100.2 × 10.sup.5 1.822 × 10.sup.5 Density (kg/m.sup.3) 1,000 1.2041
(24) In this case, embodiments of the present invention use general-purpose multi-physics finite-element analysis software (COMSOL multi-physics) for understanding of a basic mechanism of movement caused by wall adhesive force of a droplet put on the hydrophilic/hydrophobic surface and, therethrough, multiphase flow analysis may be performed.
(25) The finite-element analysis according to embodiments of the present invention may employ a level set method as a method of tracking a phase interface to perform numerical analysis and such a method may accurately calculate a curvature of the phase interface through a continuous function.
(26) Assuming that two fluids are incompressible flows that are not mixed with each other, flow analysis is performed using Navier-stokes equations. In addition, a bottom that a drop contacts is set to a wetted wall condition and the remaining interface is set to a pressure condition.
(27) A background fluid is assumed to be air as shown in the above table, a surface tension coefficient between air and a droplet is 0.07 N/m, a time step Δt is set to 1.5e.sup.−4 s and calculated to 0.015 s. A numerical analysis result therefrom is shown in
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(29) Accordingly, the knife according to embodiments of the present invention may be configured in such a way that a fore-end portion with a knife blade formed thereon is hydrophilic and a fine pattern is processed at a point adjacent to the fore-end portion to ensure hydrophobic property, thereby guiding a droplet to be moved to the fore-end portion of the knife blade. As such, there are various methods of ensuring hydrophobic property and, even if a surface is not divided into hydrophobic and hydrophilic surfaces like in a point with x of 1, contact angles are different and, thus, a droplet movement may be caused. As seen from
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(31) According to the aforementioned method of manufacturing a diamond knife for an ultra-microtome according to embodiments of the present invention, a knife may be manufactured via multiphase flow analysis and an inclined diagonal groove or lattice groove is formed on a surface of the knife and, thus, a fore-end of the knife may be always maintained in a wet state, thereby preventing an ultrathin slice from being curled. Accordingly, an operator does not necessarily spread the curled ultrathin slice and, thus, ultrathin slices may be continuously generated to reduce working time. In addition, the generated ultrathin slice according to embodiments of the present invention has excellent quality compared with the prior art and, thus, it is easy to reestablish a 2D microscope image to a 3D image, thereby advantageously enhancing the reliability of the established 3D image.
(32) Embodiments of the present invention may provide a technology for preventing semi-permanent curling by forming a groove in a surface of a diamond knife via mechanical processing using a laser. Embodiments of the present invention is advantageous in that, during production of the diamond knife, a fine pattern is preferentially processed and a blade of a cutting edge surface as a fore-end of a knife is easily ground and processed.
(33) It will be obvious to those skilled in the art to which the present invention pertains that the present invention described above is not limited to the above-mentioned embodiments and the accompanying drawings, but may be variously substituted, modified, and altered without departing from the scope and spirit of the present invention.
(34) Accordingly, the present invention is not limited to the abovementioned embodiments, and may be variously applied, and may be variously modified without departing from the gist of the present invention claimed in the claims.